US8092083B2 - Temperature sensor with digital bandgap - Google Patents
Temperature sensor with digital bandgap Download PDFInfo
- Publication number
- US8092083B2 US8092083B2 US11/865,672 US86567207A US8092083B2 US 8092083 B2 US8092083 B2 US 8092083B2 US 86567207 A US86567207 A US 86567207A US 8092083 B2 US8092083 B2 US 8092083B2
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- emitter voltage
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- 230000007613 environmental effect Effects 0.000 claims abstract description 8
- 238000000034 method Methods 0.000 claims description 7
- 238000012935 Averaging Methods 0.000 claims description 4
- 238000010586 diagram Methods 0.000 description 6
- 239000003990 capacitor Substances 0.000 description 3
- 238000006243 chemical reaction Methods 0.000 description 2
- 238000005070 sampling Methods 0.000 description 2
- 238000009825 accumulation Methods 0.000 description 1
- 230000003321 amplification Effects 0.000 description 1
- 230000003111 delayed effect Effects 0.000 description 1
- 238000003199 nucleic acid amplification method Methods 0.000 description 1
- 230000011664 signaling Effects 0.000 description 1
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Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K7/00—Measuring temperature based on the use of electric or magnetic elements directly sensitive to heat ; Power supply therefor, e.g. using thermoelectric elements
- G01K7/01—Measuring temperature based on the use of electric or magnetic elements directly sensitive to heat ; Power supply therefor, e.g. using thermoelectric elements using semiconducting elements having PN junctions
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K5/22—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral
- H03K5/24—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral the characteristic being amplitude
- H03K5/2472—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral the characteristic being amplitude using field effect transistors
- H03K5/2481—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral the characteristic being amplitude using field effect transistors with at least one differential stage
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K5/22—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral
- H03K5/24—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral the characteristic being amplitude
- H03K5/2472—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral the characteristic being amplitude using field effect transistors
- H03K5/249—Circuits having more than one input and one output for comparing pulses or pulse trains with each other according to input signal characteristics, e.g. slope, integral the characteristic being amplitude using field effect transistors using clock signals
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03M—CODING; DECODING; CODE CONVERSION IN GENERAL
- H03M3/00—Conversion of analogue values to or from differential modulation
- H03M3/30—Delta-sigma modulation
- H03M3/39—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators
- H03M3/436—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the order of the loop filter, e.g. error feedback type
- H03M3/456—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the order of the loop filter, e.g. error feedback type the modulator having a first order loop filter in the feedforward path
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03M—CODING; DECODING; CODE CONVERSION IN GENERAL
- H03M3/00—Conversion of analogue values to or from differential modulation
- H03M3/30—Delta-sigma modulation
- H03M3/39—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators
- H03M3/412—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the number of quantisers and their type and resolution
- H03M3/422—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the number of quantisers and their type and resolution having one quantiser only
- H03M3/43—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the number of quantisers and their type and resolution having one quantiser only the quantiser being a single bit one
Definitions
- This disclosure relates generally to programmable temperature sensors, and more particularly to programmable temperature sensors for integrated circuits.
- Conventional temperature sensors typically include a pair of fixed current sources and a pair of bipolar junction transistors that operate with different current densities. For instance, a first bipolar junction transistor has a first voltage V BE according when it receives and passes a first current from one of the fixed current sources, while the second bipolar junction transistor has a second voltage V BE according when it receives and passes a second current from the other fixed current source.
- These conventional temperature sensors will include a subtraction circuit coupled to each of bipolar junction transistors and to determine a voltage difference ⁇ V BE between the first and second voltages V BE from the bipolar junction transistors.
- a voltage difference ⁇ V BE is proportional to an Absolute Temperature (PTAT) value
- PTAT Absolute Temperature
- FIG. 1 is a block diagram of a temperature sensor system according to embodiments of the invention.
- FIG. 2 is a block diagram of embodiments of a temperature sensor shown in FIG. 1 .
- FIG. 3 is a block diagram of embodiments of an analog-to-digital converter shown in FIG. 1 .
- FIG. 4 is an example flowchart of the temperature sensor system systems shown in FIG. 1 .
- FIG. 1 is a block diagram of a temperature sensor system 100 according to embodiments of the invention.
- the temperature sensor system 100 includes a temperature sensor 102 , an analog-to-digital converter (ADC) 104 , control logic 106 , and a microcontroller 108 .
- the temperature sensor 102 may generate multiple analog base-emitter voltage V BE signals and provide the analog base-emitter voltage V BE signals to the analog-to-digital converter 104 .
- the temperature sensor 102 may generate the analog base-emitter voltage V BE signals by sequentially providing one current to a bipolar junction transistor to determine a first analog base-emitter voltage V BE signal and then providing a different current to the bipolar junction transistor to determine a second analog base-emitter voltage V BE signal.
- the number of base-emitter voltage V BE signals that the temperature sensor 102 generates and the currents utilized to generate them may be programmable or controllable depending on the resolution and granularity requirements for the temperature sensing system 100 . Embodiments of the temperature sensor 102 will be described below in greater detail.
- the analog-to-digital converter 104 may convert the analog base-emitter voltage V BE signals into digital base-emitter voltage V BE signals and provide the digital base-emitter voltage V BE signals to the microcontroller 108 .
- the analog-to-digital converter 104 may be a passive converter, thus consuming less power and chip area compared with active converters that typically include an amplifier that is not required in the converter using passive elements. Embodiments of the analog-to-digital converter 104 will be described below in greater detail.
- the microcontroller 108 may determine a differential base-emitter voltage ⁇ V BE from the multiple digital representations of base-emitter voltage V BE signals provided by the analog-to-digital converter 104 . For instance, when two digital base-emitter voltage V BE signals are provided from the analog-to-digital converter 104 , the microcontroller 108 may take the difference between the two digital base-emitter voltage V BE signals to determine the differential base-emitter voltage ⁇ V BE .
- the microcontroller 108 may utilize the differential base-emitter voltage ⁇ V BE that it determines, and the fact that the differential base-emitter voltage ⁇ V BE is proportional to an Absolute Temperature (PTAT) value, to sense an environmental temperature value.
- the microcontroller 108 may use a look-up table (not shown) or other calculation to determine the environmental temperature from the differential base-emitter voltage ⁇ V BE .
- the microcontroller 108 may use any number of methods to determine the differential base-emitter voltage ⁇ V BE . For instance, the microcontroller 108 may find a difference from any two of the digital base-emitter voltage V BE signals and utilize the difference as the differential base-emitter voltage ⁇ V BE . In some embodiments, the microcontroller 108 may approximate the differential base-emitter voltage ⁇ V BE from the digital base-emitter voltage V BE signals by averaging multiple differences of the between the digital base-emitter voltage V BE signals or by selecting one of the differences, such as the median difference, as the differential base-emitter voltage ⁇ V BE .
- the control logic 106 may control operations of the temperature sensor 102 and the analog-to-digital converter 104 . For instance, the control logic 106 may select the number of base-emitter voltage V BE signals that are generated by the temperature sensor 12 , and the current value utilized to generate the base-emitter voltage V BE signals. The control logic 106 may also control the operation, and/or timing of the analog-to-digital converter 104 . In some embodiments, the control logic 106 may control the operations of the temperature sensor 102 and the analog-to-digital converter 104 according to the microcontroller 108 .
- FIG. 2 is a block diagram of embodiments of a temperature sensor 102 shown in FIG. 1 .
- the temperature sensor 102 may include a variable current source 202 to provide current to a transistor 208 .
- the variable current source 202 may have a plurality of fixed current sources I 0 -I 7 that may be coupled in a current mirror configuration.
- FIG. 2 shows the variable current source 202 having eight fixed current sources, in some embodiments the variable current source 202 may include any number of fixed current sources capable of generating any magnitude of current.
- the transistor 208 may be a bipolar junction transistor having a base-emitter voltage V BE that corresponds to the magnitude of current provided to it by the variable current source 202 .
- the variable current source 202 provides current to the transistor 208 , which generates an analog base-emitter voltage responsive to the current. This analog base-emitter voltage is then provided to the microcontroller 108 after conversion by analog-to-digital converter 104 . The variable current source 202 may then provide another current, with a different magnitude, to the transistor 208 , which generates another analog base-emitter voltage responsive to the new current. After receiving the new base-emitter voltage, the microcontroller 108 is capable of determining the differential base-emitter voltage and thus the environmental temperature for the system 100 .
- the variable current source 202 may generate and provide current to a switch network 204 .
- the switch network 204 may be adapted to selectively couple the transistor 208 to the variable current source 202 , or one of the plurality of fixed current sources I 0 -I 7 , in response to prompting by a sequencer 206 .
- the sequencer 208 may control the operation of the switch network 204 responsive to input signaling from the microprocessor 108 .
- a sequencer 206 may indicate to the variable current source the amount of current to provide the switch network 204 .
- the switch network 204 provides current from the variable current source 202 to the transistor 208 , which generates an analog base-emitter voltage V BE .
- the analog base-emitter voltage V BE may be provided to the analog-to-digital converter 104 for conversion into a digital base-emitter voltage V BE signal.
- the digital base-emitter voltage V BE signal may be provided to the microcontroller 108 for further processing. This process, of the variable current source 202 generating a current that is provided to the transistor 208 via the network switch 204 , is then repeated with at least one different current magnitude.
- the sequencer 206 may cyclically select one or more of the fixed current sources I 0 to I 7 during the generation of a first base-emitter voltage, and subsequently select one or more of the fixed current sources I 0 to I 7 during the generation of a second or any other base-emitter voltage.
- a current ratio larger than 1 may be maintained between the current utilized to generate the first base-emitter voltage and at least one of the second or subsequent base-emitter voltages. This current ratio may ensure the temperature sensing system 100 determines a large ⁇ V BE , and thus generates a linear variation in temperature.
- the temperature sensor 102 may further include a current trim circuit 210 to trim current from the transistor 208 as it is provided to the analog-to-digital converter 104 .
- a current reference for the current trim circuit 210 may be about 2.5 ⁇ A.
- the temperature sensor 102 may include a trim register for calibrating the current trim circuit 210 .
- FIG. 3 is a block diagram of embodiments of an analog-to-digital converter 104 shown in FIG. 1 .
- the analog-to-digital converter 104 includes an integrator stage having a configurable switched capacitor sampling and feedback path to support a multi-resolution output.
- sampling capacitor CS and feedback capacitor CFB can be programmed up to 200 fF with 50 fF steps and accumulation capacitance may be selectable in steps of 25 pF up to 100 pF.
- a comparator 310 may be configured with a pre-amplification stage and a dynamic latch at its output.
- the comparator 310 can be clocked at variable frequencies, and may be designed to meet 12 MHz.
- Feedback control signals may be delayed by half cycle, as the feedback sets in during the first phase.
- FIG. 4 is an example flowchart of the temperature sensor system systems shown in FIG. 1 .
- the temperature sensing system 100 generates an analog voltage V BE .
- the analog voltage V BE may be generated by providing a current from a variable current source 202 to the transistor 208 .
- the transistor 208 may generate the analog voltage V BE responsive to the current from the variable current source 202 .
- the microcontroller 108 may prompt the generation of the analog voltages in block 402 by causing the sequencer 206 to select at least one of the current paths I 0 to I 7 to be coupled to the transistor 208 .
- the temperature sensing system 100 generate another analog voltage V BE .
- This analog voltage V BE may be generated by providing a different current from a variable current source 202 to the transistor 208 . This current may be much higher or much lower than the current utilized in block 402 , thus allowing increased resolution or precision in any subsequent determination of a differential base-emitter voltage.
- the microcontroller 108 may prompt the generation of the analog voltages in block 404 by causing the sequencer 206 to select five current paths I 0 to I 7 to be coupled to the transistor 208 .
- the microcontroller 108 may direct the sequencer 206 to cyclically select at least one of the current paths I 0 to I 7 during the generation of the analog voltages in block 404 .
- a current ratio of about 1:29 may be maintained between the current utilized to generate the analog voltage in block 402 and at least one of the analog voltages generated in block 404 . This current ratio may ensure the temperature sensing system 100 determines a large ⁇ V BE , and thus generates a linear variation in temperature.
- the temperature sensing system 100 determines whether to generate at least one more analog voltage V BE .
- execution returns to block 404 , where the temperature sensing system 100 generate another analog voltage V BE . Otherwise, execution proceeds to a block 408 , where the temperature sensing system 100 converts the analog voltages V BE into digital voltages V BE . In some embodiments, the temperature sensing system 100 may convert the analog voltages V BE into digital voltages V BE prior to decision block 406 .
- the temperature sensing system 100 determines a differential voltage ⁇ V BE according to the digital voltages V BE .
- the microprocessor 108 may take the difference between the two digital base-emitter voltage V BE signals to determine the differential base-emitter voltage ⁇ V BE .
- the microcontroller 108 may use any number of methods to determine the differential base-emitter voltage ⁇ V BE .
- the microcontroller 108 may find a difference from any two of the digital base-emitter voltage V BE signals and utilize the difference as the differential base-emitter voltage ⁇ V BE .
- the microcontroller 108 may approximate the differential base-emitter voltage ⁇ V BE from the digital base-emitter voltage V BE signals by averaging multiple differences of the between the digital base-emitter voltage V BE signals or by selecting one of the differences, such as the median difference, as the differential base-emitter voltage ⁇ V BE .
- the temperature sensing system 100 determines a temperature according to the differential voltage ⁇ V BE .
- the microcontroller 108 may utilize the differential base-emitter voltage ⁇ V BE that it determines, and the fact that the differential base-emitter voltage ⁇ V BE is proportional to an Absolute Temperature (PTAT) value, to sense an environmental temperature value.
- the microcontroller 108 may use a look-up table (not shown) or other calculation to determine the environmental temperature from the differential base-emitter voltage ⁇ V BE .
Abstract
Description
Claims (5)
Priority Applications (4)
Application Number | Priority Date | Filing Date | Title |
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US11/865,672 US8092083B2 (en) | 2007-04-17 | 2007-10-01 | Temperature sensor with digital bandgap |
US12/239,450 US20090055592A1 (en) | 2007-04-17 | 2008-09-26 | Digital signal processor control architecture |
US12/238,893 US8543628B2 (en) | 2007-04-17 | 2008-09-26 | Method and system of digital signal processing |
US13/347,463 US20120230367A1 (en) | 2007-04-17 | 2012-01-10 | Temperature sensor with digital bandgap |
Applications Claiming Priority (2)
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US91239907P | 2007-04-17 | 2007-04-17 | |
US11/865,672 US8092083B2 (en) | 2007-04-17 | 2007-10-01 | Temperature sensor with digital bandgap |
Related Child Applications (3)
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US12/239,450 Continuation-In-Part US20090055592A1 (en) | 2007-04-17 | 2008-09-26 | Digital signal processor control architecture |
US12/238,893 Continuation-In-Part US8543628B2 (en) | 2007-04-17 | 2008-09-26 | Method and system of digital signal processing |
US13/347,463 Continuation US20120230367A1 (en) | 2007-04-17 | 2012-01-10 | Temperature sensor with digital bandgap |
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US20080259998A1 US20080259998A1 (en) | 2008-10-23 |
US8092083B2 true US8092083B2 (en) | 2012-01-10 |
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US13/347,463 Abandoned US20120230367A1 (en) | 2007-04-17 | 2012-01-10 | Temperature sensor with digital bandgap |
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